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ISSN: 2582-8266 (Online)  || UGC Compliant Journal || Google Indexed || Impact Factor: 9.48 || Crossref DOI

Fast Publication within 2 days || Low Article Processing charges || Peer reviewed and Referred Journal

Research and review articles are invited for publication in Volume 18, Issue 2 (February 2026).... Submit articles

AI/ML optimized lakehouse architecture: A Comprehensive framework for modern data science

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  • AI/ML optimized lakehouse architecture: A Comprehensive framework for modern data science

Anvesh Reddy Aileni *

Oklahoma State University, USA.

Publication history: 

Review Article

World Journal of Advanced Engineering Technology and Sciences, 2025, 15(02), 2099-2104

Article DOI: 10.30574/wjaets.2025.15.2.0754

DOI url: https://doi.org/10.30574/wjaets.2025.15.2.0754

Received on 06 April 2025; revised on 14 May 2025; accepted on 16 May 2025

The AI/ML optimized lakehouse architecture represents a transformative paradigm in modern data management, addressing the critical challenges posed by exponential data growth across enterprises. This comprehensive framework integrates the flexibility of data lakes with the performance and reliability of data warehouses, creating a unified platform that eliminates traditional system boundaries and redundancies. The architecture leverages open table formats such as Delta Lake, Apache Iceberg, and Apache Hudi to introduce enterprise-grade features including ACID transactions, schema evolution, and time-travel capabilities to previously unstructured data repositories. Through detailed articles of implementation metrics across diverse industries, the framework demonstrates substantial improvements in query performance, data processing efficiency, model development cycles, and operational costs. ML-centric data pipelines built on this foundation show remarkable advancements in feature engineering capabilities, while integrated feature stores dramatically reduce redundancy and increase model deployment velocity. The lakehouse approach further transforms the machine learning lifecycle through streamlined experimentation, deployment, and monitoring processes, enabling organizations to achieve significantly higher model success rates and faster time-to-production. For enterprises seeking to harness the full potential of their data assets for advanced analytics and artificial intelligence applications, the lakehouse architecture provides a future-proof foundation that scales effectively with growing data volumes while maintaining necessary governance standards. 

Lakehouse architecture; Machine learning infrastructure; Feature engineering; Data pipelines; Model lifecycle management

https://wjaets.com/sites/default/files/fulltext_pdf/WJAETS-2025-0754.pdf

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Anvesh Reddy Aileni. AI/ML optimized lakehouse architecture: A Comprehensive framework for modern data science. World Journal of Advanced Engineering Technology and Sciences, 2025, 15(02), 2099-2104. Article DOI: https://doi.org/10.30574/wjaets.2025.15.2.0754.

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